| [1] |
Poornima S, Manikandan S, Prakash R, Deena SR, Subbaiya R, et al. 2024. Biofuel and biochemical production through biomass transformation using advanced thermochemical and biochemical processes – a review. |
| [2] |
Cheng C, Ding L, Guo Q, He Q, Gong Y, et al. 2022. Process analysis and kinetic modeling of coconut shell hydrothermal carbonization. |
| [3] |
Azeta O, Ayeni AO, Agboola O, Elehinafe FB. 2021. A review on the sustainable energy generation from the pyrolysis of coconut biomass. |
| [4] |
Ighalo JO, Conradie J, Ohoro CR, Amaku JF, Oyedotun KO, et al. 2023. Biochar from coconut residues: an overview of production, properties, and applications. |
| [5] |
Suman S, Gautam S. 2017. Pyrolysis of coconut husk biomass: analysis of its biochar properties. |
| [6] |
Ahmad RK, Sulaiman SA, Inayat M, Umar HA. 2020. The effects of temperature, residence time and particle size on a charcoal produced from coconut shell. |
| [7] |
Akter MM, Surovy IZ, Sultana N, Faruk MO, Gilroyed BH, et al. 2024. Techno-economics and environmental sustainability of agricultural biomass-based energy potential. |
| [8] |
Monir MU, Khatun F, Abd Aziz A, Vo DVN. 2020. Thermal treatment of tar generated during co-gasification of coconut shell and charcoal. |
| [9] |
Sarkar JK, Wang Q. 2020. Different pyrolysis process conditions of South Asian waste coconut shell and characterization of gas, bio-char, and bio-oil. |
| [10] |
Romero Millán LM, Sierra Vargas FE, Nzihou A. 2021. Characterization of steam gasification biochars from lignocellulosic agrowaste towards soil applications. |
| [11] |
Ma Z, Wang J, Yang Y, Zhang Y, Zhao C, et al. 2018. Comparison of the thermal degradation behaviors and kinetics of palm oil waste under nitrogen and air atmosphere in TGA-FTIR with a complementary use of model-free and model-fitting approaches. |
| [12] |
Ma Z, Sun Q, Ye J, Yao Q, Zhao C. 2016. Study on the thermal degradation behaviors and kinetics of alkali lignin for production of phenolic-rich bio-oil using TGA–FTIR and Py–GC/MS. |
| [13] |
Kazawadi D, Ntalikwa J, Kombe G. 2022. Co-pyrolysis of cashew nut, coconut shells, and rice husk waste: kinetic and thermodynamic investigations. |
| [14] |
Wang S, Dai G, Yang H, Luo Z. 2017. Lignocellulosic biomass pyrolysis mechanism: a state-of-the-art review. |
| [15] |
Lopes FCR, Tannous K. 2020. Coconut fiber pyrolysis decomposition kinetics applying single- and multi-step reaction models. |
| [16] |
Li C, Zhang J, Shan R, Yuan H, Chen Y. 2023. Kinetic study for thermocatalytic degradation of waste mixed cloth over antibiotic residue derived carbon-based solid acids. |
| [17] |
Starink MJ. 2003. The determination of activation energy from linear heating rate experiments: a comparison of the accuracy of isoconversion methods. |
| [18] |
Sokoto MA, Singh R, Krishna BB, Kumar J, Bhaskar T. 2016. Non-isothermal kinetic study of de-oiled seeds cake of African star apple (Chrosophyllum albidum) using thermogravimetry. |
| [19] |
Rueda-Ordóñez YJ, Arias-Hernández CJ, Manrique-Pinto JF, Gauthier-Maradei P, Bizzo WA. 2019. Assessment of the thermal decomposition kinetics of empty fruit bunch, kernel shell and their blend. |
| [20] |
Yang H, Yan R, Chen H, Lee DH, Zheng C. 2007. Characteristics of hemicellulose, cellulose and lignin pyrolysis. |
| [21] |
Alabi AO, Sambo AS. 2023. Comparative bio-energy potential of De-oiled coconut pulp and Coconut shell: insights from physicochemical characterization, pyrolysis kinetics and thermodynamic studies. |
| [22] |
Rueda-Ordóñez YJ, Tannous K. 2018. Drying and thermal decomposition kinetics of sugarcane straw by nonisothermal thermogravimetric analysis. |
| [23] |
Liu Q, Wang S, Zheng Y, Luo Z, Cen K. 2008. Mechanism study of wood lignin pyrolysis by using TG–FTIR analysis. |
| [24] |
Zakzeski J, Bruijnincx PCA, Jongerius AL, Weckhuysen BM. 2010. The catalytic valorization of lignin for the production of renewable chemicals. |
| [25] |
Li C, Zhao X, Wang A, Huber GW, Zhang T. 2015. Catalytic transformation of lignin for the production of chemicals and fuels. |
| [26] |
Staš M, Auersvald M, Kejla L, Vrtiška D, Kroufek J, et al. 2020. Quantitative analysis of pyrolysis bio-oils: a review. |
| [27] |
Bianasari AA, Le MT, Abu Bakar MS, Saepurahman, Mansur D, et al. 2026. Phenol-rich bio-oil synthesis via single and dual metal-oxide/zeolite catalysts in biomass catalytic pyrolysis: comparison of Y2O3/ZSM-5 and MgO/Y2O3/ZSM-5. |
| [28] |
Ali I, Bahaitham H, Naebulharam R. 2017. A comprehensive kinetics study of coconut shell waste pyrolysis. |
| [29] |
Gao Y, Yang Y, Qin Z, Sun Y. 2016. Factors affecting the yield of bio-oil from the pyrolysis of coconut shell. |
| [30] |
Hubble AH, Goldfarb JL. 2021. Synergistic effects of biomass building blocks on pyrolysis gas and bio-oil formation. |
| [31] |
Li X, Cen K, Li J, Jia D, Gao J, et al. 2025. Insights into the interactions between cellulose and hemicellulose during pyrolysis for optimizing the properties of biochar as a potential energy vector. |
| [32] |
Vyazovkin S, Burnham AK, Criado JM, Pérez-Maqueda LA, Popescu C, et al. 2011. ICTAC Kinetics Committee recommendations for performing kinetic computations on thermal analysis data. |
| [33] |
Yang X, Zhao Y, Li W, Li R, Wu Y. 2019. Unveiling the pyrolysis mechanisms of hemicellulose: experimental and theoretical studies. |
| [34] |
Suota MJ, da Silva TA, Zawadzki SF, Sassaki GL, Hansel FA, et al. 2021. Chemical and structural characterization of hardwood and softwood LignoForce™ lignins. |
| [35] |
Siddiqi H, Kumari U, Biswas S, Mishra A, Meikap BC. 2020. A synergistic study of reaction kinetics and heat transfer with multi-component modelling approach for the pyrolysis of biomass waste. |
| [36] |
Akazawa M, Kojima Y, Kato Y. 2016. Effect of pyrolysis temperature on the pyrolytic degradation mechanism of β-aryl ether linkages. |
| [37] |
Gorshkov A, Berezikov N, Kaltaev A, Yankovsky S, Slyusarsky K, et al. 2021. Analysis of the physicochemical characteristics of biochar obtained by slow pyrolysis of nut shells in a nitrogen atmosphere. |
| [38] |
Wu Y, Gui Q, Zhang H, Li H, Li B, et al. 2023. Effect of biomass components' interaction on the pyrolysis reaction kinetics and small-molecule product release characteristics. |
| [39] |
Ding K, Wang Y, Liu S, Lin G, Syed-Hassan SSA, et al. 2021. Volatile-char interactions during biomass pyrolysis: insight into the activity of chars derived from three major components. |